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基于轨迹时空关联语义和时态熵的移动对象社会角色发现 被引量:8
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作者 马宇驰 杨宁 +2 位作者 谢琳 李川 唐常杰 《计算机研究与发展》 EI CSCD 北大核心 2012年第10期2153-2160,共8页
现有轨迹相似性度量缺乏对时空语义和时间随机性的考虑,不能有效地区分移动对象的社会角色.为解决这一问题,做了如下工作:1)提出了时空关联语义(spatial-temporal associated semantics,STAS)的概念,解释了轨迹的语义相似性规律,即两条... 现有轨迹相似性度量缺乏对时空语义和时间随机性的考虑,不能有效地区分移动对象的社会角色.为解决这一问题,做了如下工作:1)提出了时空关联语义(spatial-temporal associated semantics,STAS)的概念,解释了轨迹的语义相似性规律,即两条轨迹的语义相似性与其在某时段内经过同类型区域的概率正相关;2)提出了时态熵(temporal entropy)的概念,度量了轨迹经过同一类型区域的时间随机性;3)基于STAS和时态熵,给出轨迹语义相似性度量(trajectory semantic similarity,TSS),刻画了轨迹所属移动对象的社会角色的时空特征;4)提出了移动对象社会角色发现算法(social roles discovering algorithm,SRDA),该算法基于TSS实现轨迹聚类,其中一个聚簇代表一种社会角色.真实数据和仿真数据上的实验表明,SRDA在准确率上比现有方法平均提高了18%,同时具有线性时间复杂度,从而验证了算法的有效性和性能. 展开更多
关键词 轨迹 时空关联语义 轨迹语义相似性 时态熵 社会角色发现
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Application of time–frequency entropy from wake oscillation to gas–liquid flow pattern identification 被引量:6
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作者 HUANG Si-shi SUN Zhi-qiang +1 位作者 ZHOU Tian ZHOU Jie-min 《Journal of Central South University》 SCIE EI CAS CSCD 2018年第7期1690-1700,共11页
Gas–liquid two-phase flow abounds in industrial processes and facilities. Identification of its flow pattern plays an essential role in the field of multiphase flow measurement. A bluff body was introduced in this s... Gas–liquid two-phase flow abounds in industrial processes and facilities. Identification of its flow pattern plays an essential role in the field of multiphase flow measurement. A bluff body was introduced in this study to recognize gas–liquid flow patterns by inducing fluid oscillation that enlarged differences between each flow pattern. Experiments with air–water mixtures were carried out in horizontal pipelines at ambient temperature and atmospheric pressure. Differential pressure signals from the bluff-body wake were obtained in bubble, bubble/plug transitional, plug, slug, and annular flows. Utilizing the adaptive ensemble empirical mode decomposition method and the Hilbert transform, the time–frequency entropy S of the differential pressure signals was obtained. By combining S and other flow parameters, such as the volumetric void fraction β, the dryness x, the ratio of density φ and the modified fluid coefficient ψ, a new flow pattern map was constructed which adopted S(1–x)φ and (1–β)ψ as the vertical and horizontal coordinates, respectively. The overall rate of classification of the map was verified to be 92.9% by the experimental data. It provides an effective and simple solution to the gas–liquid flow pattern identification problems. 展开更多
关键词 gas–liquid two-phase flow wake oscillation flow pattern map time–frequency entropy ensemble empirical mode decomposition Hilbert transform
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